Air outlet device and air conditioning equipment

By setting teeth on the air outlet component and using the drive member to drive the gear to rotate, the problem of single air outlet direction of the air conditioning equipment is solved, and multi-directional air supply and temperature uniformity are achieved.

CN113048642BActive Publication Date: 2025-07-25BDR THERMEA HVAC CO LTD
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Patent Information

Application Number
CN202110349646.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-03-31
Publication Date
2025-07-25
Estimated Expiration
2041-03-31

AI Technical Summary

Technical Problem

The air outlet direction of existing air conditioning equipment is single, resulting in uneven indoor temperature.

Method used

The first tooth part is provided on the air outlet member, and the first gear meshing with the first tooth part is driven by the first driving member to rotate, so as to realize the rotation of the air outlet member, thereby adjusting the air outlet direction.

Benefits of technology

It realizes multi-directional, no dead angles, and improves the comfort and temperature uniformity of air conditioning equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an air outlet device and an air conditioning equipment. The air outlet device includes: a housing, an air outlet component and a first driving mechanism. An installation opening is formed on the housing; the air outlet component is rotatably arranged at the installation opening. A main air outlet is formed on the air outlet component, and a first tooth part is formed on the outer periphery of the air outlet component; the first driving mechanism includes a first driving member and a first gear. A second tooth part adapted to mesh with the first tooth part is formed on the first gear, and the first driving member is connected to the first gear to drive the first gear to rotate. According to the air outlet device of the present invention, by arranging the first tooth part on the air outlet component and driving the first gear meshing with the first tooth part to rotate through the first driving member, the rotation of the air outlet component can be conveniently realized, and further the air outlet direction of the air outlet device can be conveniently adjusted, so that the air outlet device can meet the air supply requirement of multi-direction and dead-angle-free, and the comfort of the air conditioning equipment is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of air conditioning, and in particular, to an air outlet device and an air conditioning equipment. Background Art

[0002] In the related art, the air outlet direction of the air conditioning equipment is single, and the air guiding range is limited, which easily leads to uneven indoor temperature. Summary of the Invention

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. For this reason, the present invention provides an air outlet device, which can realize multi-directional air supply.

[0004] The present invention also provides an air conditioning equipment with the above air outlet device.

[0005] The air outlet device according to the first aspect embodiment of the present invention includes: a housing, an installation opening is formed on the housing; an air outlet component, the air outlet component is rotatably arranged at the installation opening, a main air outlet is formed on the air outlet component, and a first tooth part is formed on the air outlet component; and a first driving mechanism, the first driving mechanism includes a first driving member and a first gear, a second tooth part meshing with the first tooth part is formed on the first gear, and the first driving member is connected to the first gear to drive the first gear to rotate.

[0006] According to the air outlet device of the first aspect embodiment of the present invention, by arranging the first tooth part on the air outlet component and driving the first gear meshing with the first tooth part to rotate through the first driving member, the rotation of the air outlet component can be conveniently realized, and further, the air outlet direction of the air outlet device can be conveniently adjusted, so that the air outlet device can meet the requirement of multi-directional and dead-angle-free air supply, and the comfort of the air conditioning equipment is improved.

[0007] According to some embodiments of the present invention, the air outlet component includes: a bottom plate, the main air outlet is formed on the bottom plate; and a side wall, the side wall surrounds the outer periphery of the bottom plate, a folding structure that turns outwards is arranged on the side wall, the first tooth part is formed on the folding structure, and the folding structure is arranged on the housing.

[0008] According to some embodiments of the present invention, the folding structure includes: a first flanging, one end of the first flanging is connected to the side wall, and the other end extends in a direction away from the central axis of the air outlet component, and the first tooth part is formed on the first flanging.

[0009] According to some embodiments of the present invention, the outer diameter of the first gear is smaller than the outer diameter of the first flanging.

[0010] According to some embodiments of the present invention, the folding structure further includes: a second flanging, the second flanging is connected to the first flanging and is opposite to the side wall.

[0011] According to some embodiments of the present invention, the folding structure further includes: a plurality of rolling members, the plurality of rolling members are spaced apart in the circumferential direction of the air outlet component, and both ends of each rolling member are rotatably connected to the side wall and the second flanging respectively.

[0012] According to some embodiments of the present invention, the housing includes a third flanging, the third flanging is formed by inwards folding from the installation opening of the housing, and an auxiliary air outlet channel is defined between the third flanging and the side wall.

[0013] According to some embodiments of the present invention, at least one of the folding structure, the side wall and the third flanging is provided with an auxiliary air outlet communicating with the auxiliary air outlet channel; or the folding structure is spaced apart from the third flanging to form an auxiliary air outlet communicating with the auxiliary air outlet channel.

[0014] According to some embodiments of the present invention, the first flanging is arranged on the third flanging, and the second flanging surrounds the outer circumference of the third flanging.

[0015] According to some embodiments of the present invention, the housing includes a support rib, the support rib surrounds the installation opening, and the folding structure is arranged on the support rib and can rotate relative to the support rib.

[0016] According to some embodiments of the present invention, the support rib is connected to the third flanging through a connecting rib, and a communication hole communicating with the auxiliary air outlet channel is further provided on the connecting rib.

[0017] According to some embodiments of the present invention, in the direction from the first flanging to the bottom plate, the side wall and / or the second flanging extend in a direction away from the central axis of the air outlet component.

[0018] According to some embodiments of the present invention, the air outlet component includes a bottom plate, the main air outlet is formed on the bottom plate, a connecting bracket is provided on the bottom plate, the connecting bracket straddles the main air outlet, a connecting pipe is provided on the connecting bracket, and the connecting pipe and the bottom plate are located on opposite sides of the connecting bracket.

[0019] According to some embodiments of the present invention, the axis of the connecting pipe coincides with the rotation axis of the bottom plate, the housing includes a support beam, a positioning hole is provided on the support beam, and the connecting pipe is rotatably arranged in the positioning hole.

[0020] According to some embodiments of the present invention, it further includes an air guiding assembly, and the air guiding assembly includes: an air guiding plate pivotally arranged at the main air outlet; a second driving mechanism connected to the air guiding plate to drive the air guiding plate to flip.

[0021] According to some embodiments of the present invention, the second driving mechanism includes: a linkage mechanism; a second driving member, and the second driving member and the air guiding plate are respectively connected to the linkage mechanism.

[0022] In some embodiments of the present invention, the linkage mechanism includes a first connecting member, a second connecting member, and a third connecting member connected in sequence. The first connecting member is fixedly connected to the second driving member, the third connecting member is fixedly connected to the air guiding plate, and two ends of the second connecting member are rotatably connected to the first connecting member and the third connecting member respectively.

[0023] In some other embodiments of the present invention, the linkage mechanism includes a driving gear and a transmission gear that mesh with each other. The driving gear is connected to the second driving member, and the transmission gear is connected to the air guiding plate.

[0024] According to some embodiments of the present invention, the housing is formed with an inlet, and the housing further includes an air guiding pipe surrounding the installation port and the inlet, and the first driving member is located outside the air guiding pipe.

[0025] According to some embodiments of the present invention, the air guiding pipe is provided with an avoidance through hole, the air outlet component is received in the air guiding pipe, and part of the first gear extends into the air guiding pipe to mesh with the first tooth portion.

[0026] The air conditioning device according to the second aspect embodiment of the present invention includes the air outlet device of the air conditioning device according to the first aspect embodiment of the present invention above.

[0027] The air conditioning device according to the second aspect embodiment of the present invention, by providing the air outlet device of the air conditioning device according to the first aspect embodiment above, by providing a first tooth portion on the air outlet component, and driving the first gear meshing with the first tooth portion to rotate by the first driving member, the rotation of the air outlet component can be conveniently realized, and further the air outlet direction of the air outlet device can be conveniently adjusted, so that the air outlet device can meet the air supply requirement of multi-direction and non-dead angle, and the comfort of the air conditioning device is improved.

[0028] The additional aspects and advantages of the present invention will be partly given in the following description, partly will become obvious from the following description, or be understood through the practice of the present invention. Description of the Drawings

[0029] Figure 1Is a perspective view of the air outlet device according to an embodiment of the present invention;

[0030] Figure 2 Is an exploded view of the air outlet device according to an embodiment of the present invention;

[0031] Figure 3 Is a top view of the air outlet device according to an embodiment of the present invention;

[0032] Figure 4 Is along Figure 3 The cross-sectional view taken along line A-A in;

[0033] Figure 4a Is Figure 4 The enlarged view of the circled part A in;

[0034] Figure 5 Is along Figure 3 The cross-sectional view taken along line B-B in;

[0035] Figure 5a Is Figure 5 The enlarged view of the circled part B in;

[0036] Figure 6 Is a perspective view of the internal structure of the air outlet device according to an embodiment of the present invention;

[0037] Figure 7 The top view of the internal structure of the air outlet device according to an embodiment of the present invention;

[0038] Figure 8 Is along Figure 7 The cross-sectional view taken along line C-C in;

[0039] Figure 9 Is the bottom view of the air outlet device according to an embodiment of the present invention;

[0040] Figure 10 Is the installation perspective view of the air conditioning equipment according to an embodiment of the present invention;

[0041] Figure 11 Is another installation perspective view of the air conditioning equipment according to an embodiment of the present hairstyle;

[0042] Figure 12 Is the schematic diagram of the air conditioning equipment according to an embodiment of the present hairstyle;

[0043] Figure 13 Is another schematic diagram of the air conditioning equipment according to an embodiment of the present hairstyle;

[0044] Figure 14 Is the top view of the air conditioning equipment according to an embodiment of the present invention;

[0045] Figure 15Top view of an air conditioning device according to another embodiment of the present invention;

[0046] Figure 16 Cross-sectional view of an air conditioning device according to an embodiment of the present invention;

[0047] Figure 17 Cross-sectional view of the main unit module of an air conditioning device according to an embodiment of the present invention;

[0048] Figure 18 Exploded view of an air outlet device according to another embodiment of the present invention;

[0049] Figure 19 Cross-sectional view of an air outlet device according to still another embodiment of the present invention;

[0050] Figure 20 Is Figure 19 Enlarged view of the circled part C in

[0051] Figure 21 Is along Figure 19 Cross-sectional view taken along line F-F in

[0052] Reference numerals:

[0053] 1000, air conditioning device;

[0054] 100, air outlet device;

[0055] 1, housing; 11, panel; 111, mounting opening; 12, side plate; 13, top plate; 131, inlet; 132, support beam; 1321, positioning hole; 14, air duct; 141, avoidance through hole;

[0056] 2, air outlet component; 21, bottom plate; 211, main air outlet; 22, side wall; 231, first flanging; 2311, first tooth part; 232, second flanging; 24, pivot hole;

[0057] 3, first driving mechanism; 31, first driving member; 32, first gear; 321, second tooth part;

[0058] 4, connecting bracket; 41, first support part; 42, main body part; 43, second support part; 44, connecting pipe;

[0059] 73, third flanging; 74, auxiliary air outlet channel; 75, auxiliary air outlet;

[0060] 8, air deflector; 81, pivot shaft; 82, first air deflector plate; 83, second air deflector plate;

[0061] 9. Second driving mechanism; 91. Second driving member; 92. Linkage mechanism; 921. First connecting member; 922. Second connecting member; 923. Third connecting member; 924. Driving gear; 925. Transmission gear;

[0062] 200. Main machine module;

[0063] 20. Machine shell; 201. First side wall; 202. Second side wall; 203. First chamber; 204. Second chamber; 205. Third chamber; 206. First air duct; 2061. First air inlet; 2062. First air outlet; 207. Second air duct; 2071. Second air inlet; 2072. Second air outlet;

[0064] 30. First fan; 40. First heat exchanger; 50. Second fan; 60. Second heat exchanger; 70. Compressor; 80. Water receiving tray; 90. Pumping water module; 300. First flexible pipe; 400. Second flexible pipe; 500. Electric heating device;

[0065] 600. Ceiling surface; 601. Indoor air supply outlet; 602. Indoor air inlet; 700. Wall; 701. Outdoor exhaust outlet. Detailed implementation manners

[0066] The embodiments of the present invention will be described in detail below. Examples of the embodiments are shown in the drawings, where the same or similar reference numerals indicate the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present invention and should not be construed as a limitation of the present invention.

[0067] The following disclosure provides many different embodiments or examples for implementing different structures of the present invention. To simplify the disclosure of the present invention, the components and settings of specific examples are described below. Of course, they are only examples and are not intended to limit the present invention. In addition, the present invention may repeat reference numerals and / or letters in different examples. This repetition is for the purpose of simplification and clarity and does not itself indicate the relationship between the various embodiments and / or settings discussed. In addition, the present invention provides examples of various specific processes and materials, but those of ordinary skill in the art may be aware of the applicability of other processes and / or the use of other materials.

[0068] The air outlet device 100 according to an embodiment of the present invention will be described below with reference to the drawings. Among them, the air conditioning device 1000 may be an air conditioner or the like. For example, the air conditioning device 1000 may be a bathroom air conditioner, a ceiling heater, a bathroom air conditioner, a kitchen air conditioner, etc. The air conditioning device 1000 may be installed on the ceiling surface 600 of rooms such as bathrooms, toilets, and kitchens.

[0069] As Figure 1 and Figure 2 shown, the air outlet device 100 according to the embodiment of the first aspect of the present invention includes: a housing 1, an air outlet component 2, and a first driving mechanism 3.

[0070] Referring to Figure 1 , the housing 1 may include a panel 11, side plates 12, and a top plate 13. Among them, the side plates 12 are provided on the panel 11, and the top plate 13 is provided on the side of the side plates 12 away from the panel 11. Among them, the panel 11, the side plates 12, and the top plate 13 may be separate parts, and the three are installed together to form the housing 1; or, the side plates 12 and the top plate 13 are an integrally formed structure, and the side plates 12 are installed with the panel 11 to form the housing 1; or, the panel 11 and the side plates 12 are an integrally formed structure, and the top plate 13 and the side plates 12 are installed together to form the housing 1. A part of the ceiling surface 600 may be formed as the panel 11, or the panel 11 may also be a plate body provided on the ceiling surface 600 and independent of the ceiling surface 600. An installation space is defined inside the housing 1. An installation opening 111 may be formed on the housing 1, and the air outlet component 2 is rotatably provided at the installation opening 111, and a main air outlet 211 is formed on the air outlet component 2.

[0071] Specifically, the installation opening 111 may be formed on the panel 11, and the air outlet component 2 may rotate around the central axis of the installation opening 111. That is to say, the air outlet component 2 in the present application can rotate as a whole, so that when the air conditioning device 1000 is working, the air supply direction can be adjusted by rotating the air outlet component 2, and further the purpose that the air outlet device 100 of the air conditioning device 1000 can arbitrarily adjust the air supply direction can be achieved.

[0072] The first driving mechanism 3 may include a first driving member 31 and a first gear 32. Optionally, the first driving member 31 may be a motor. For example, in some embodiments of the present invention, the first gear 32 may be provided on the driving shaft of the motor, and at this time the motor can directly drive the first gear 31 to rotate.

[0073] It can be understood that in some other embodiments of the present invention, the first driving member 31 may include a motor and at least one second gear. When the second gear is one, the second gear is provided on the driving shaft of the motor and meshes with the first gear 32. When the second gear is greater than or equal to two, one of the second gears is provided on the driving shaft of the motor, and the other second gears are meshed and connected between this second gear (the second gear provided on the driving shaft of the motor) and the first gear 32. At this time, the first driving member 31 can drive a plurality of second gears to rotate, and further drive the first gear 32 to rotate.

[0074] Among them, a first tooth portion 2311 is formed on the air outlet component 2. For example, the first tooth portion 2311 can be formed on the outer periphery of the air outlet component 2 (for example, the peripheral wall of the air outlet component 2). A second tooth portion 321 adapted to mesh with the first tooth portion 2311 is formed on the first gear 32. The first driving member 31 is connected to the first gear 32 to drive the first gear 32 to rotate.

[0075] Referring to Figure 2 , the second tooth portion 321 is formed on the outer periphery of the first gear 32. When the first driving member 31 operates, it can drive the first gear 32 to rotate, and further drive the air outlet component 2 to rotate. Thus, by providing the first tooth portion 2311 on the air outlet component 2 and driving the first gear 32 meshing with the first tooth portion 2311 to rotate through the first driving member 31, the rotation of the air outlet component 2 can be conveniently realized, and further the air outlet direction of the air outlet device 100 can be conveniently adjusted, so that the air outlet device 100 can meet the requirement of multi-directional and dead-angle-free air supply, improving the comfort of the air conditioning device 1000.

[0076] For the air outlet device 100 according to the first aspect embodiment of the present invention, by providing the first tooth portion 2311 on the air outlet component 2 and driving the first gear 32 meshing with the first tooth portion 2311 to rotate through the first driving member 31, the rotation of the air outlet component 2 can be conveniently realized, and further the air outlet direction of the air outlet device 100 can be conveniently adjusted, so that the air outlet device 100 can meet the requirement of multi-directional and dead-angle-free air supply, improving the comfort of the air conditioning device 1000.

[0077] According to some embodiments of the present invention, the air outlet component 2 includes a bottom plate 21 and a side wall 22. As Figure 2 , Figure 4 and Figure 5 shown, the bottom plate 21 can be formed into a circular plate-like structure, and the side wall 22 surrounds the outer periphery of the bottom plate 21. The main air outlet 211 can be formed on the bottom plate 21. Among them, the side wall 22 is provided with a folding structure 23 that turns outward. Specifically, one end of the side wall 22 away from the bottom plate 21 is provided with a folding structure 23 that turns outward, and the first tooth portion 2311 is formed on the folding structure 23. For example, the first tooth portion 2311 can be formed on the outer periphery of the folding structure 23, and the folding structure 23 can be provided on the housing 1.

[0078] Here, it should be noted that the direction "outer" mentioned in this application refers to the direction away from the center of the housing 1 or the direction away from the central axis of the air outlet component 2. Correspondingly, the direction "inner" mentioned in this application refers to the direction close to the center of the housing 1 or the direction close to the central axis of the air outlet component 2.

[0079] Referring to Figure 4a and Figure 5a, one end of the side wall 22 away from the bottom plate 21 is provided with a folding structure 23 that folds towards the direction away from the central axis of the air outlet component 2, and the first tooth portion 2311 can be formed on the end face of the end of the folding structure 23 away from the side wall 22. Thus, the first tooth portion 2311 can be conveniently formed on the air outlet component 2, with a simple structure and convenient processing. At the same time, the folding structure 23 can be supported on the housing 1. Thus, the air outlet component 2 can be supported by the housing 1, making the position of the air outlet component 2 stable, with a simple structure and convenient processing.

[0080] According to some embodiments of the present invention, the folding structure 23 may include: a first flanging 231. As Figure 4a and Figure 5a shown, one end of the first flanging 231 is connected to the side wall 22, and the other end of the first flanging 231 extends towards the direction away from the central axis of the air outlet component 2. The first tooth portion 2311 can be formed on the first flanging 231. For example, the first tooth portion 2311 can be formed on the outer periphery of the first flanging 231. Thus, it is convenient to form the first tooth portion 2311 on the air outlet component 2, and at the same time, it is convenient for the first tooth portion 2311 to cooperate with the first gear 32. In addition, it is also convenient for the air outlet component 2 to cooperate with the housing 1, and the air outlet component 2 is supported by the housing 1 to prevent the air outlet component 2 from coming out of the installation opening 111.

[0081] Among them, the first flanging 231 and the side wall 22 can be an integrally formed structure or a split structure. When the first flanging 231 and the side wall 22 are in a split structure, the first flanging 231 and the side wall 22 can be connected together by means such as bolt connection and snap connection.

[0082] According to some embodiments of the present invention, the outer diameter of the first gear 32 is smaller than the outer diameter of the first flanging 231. Thus, the rotational torque of the first driving member 31 can be reduced, and thus the volume of the first driving member 31 can be reduced, which is beneficial to reducing the occupied space of the first driving mechanism 3.

[0083] In some embodiments of the present invention, the flanging structure 23 further includes a second flanging 232. The second flanging 232 is connected to the first flanging 231 and the second flanging 232 is opposite to the side wall 22. In this embodiment, the first flanging 231 can be arranged on the housing 1, or the second flanging 232 can be arranged on the housing 1.

[0084] As Figure 4 , Figure 4a , Figure 5 and Figure 5aAs shown, a limiting groove can be defined between the first flanging 231 and the second flanging 232, and a structure adapted to extend into the limiting groove and cooperate with the limiting groove can be provided on the housing 1 to realize the circumferential limitation of the air outlet component 2, avoid the shaking of the air outlet component 2 when rotating, and avoid the disengagement of the air outlet component 2 from the housing 1, so that the operation of the air outlet component 2 is more stable.

[0085] In some embodiments of the present invention, such as Figure 19 and Figure 20 As shown, the folding structure 23 further includes a plurality of rolling members 233. Herein, "a plurality" in the present application means two or more. The plurality of rolling members 233 are spaced apart in the circumferential direction of the air outlet component 2, and both ends of each rolling member 233 are rotatably connected to the side wall 22 and the second flanging 232 respectively. That is to say, both ends of each rolling member 233 are rotatably connected to the side wall 22 and the second flanging 232 respectively, and the rolling member 233 is in rolling cooperation with the housing 1.

[0086] Specifically, referring to Figure 20 , the rolling member 233 may include a rolling part 2331, and the rolling part 2331 may be generally formed in a cylindrical shape. Rolling shafts 2332 are respectively provided at both axial ends of the rolling part 2331, and shaft holes 2333 adapted to cooperate with the rolling shafts 2332 are respectively provided on the side wall 22 and the second flanging 232, and the rolling shafts 2332 are rotatably arranged in the shaft holes 2333. Thus, by providing the rolling member 233, the rolling member 233 is in rolling cooperation with the housing 1, so that the friction force between the folding structure 23 and the housing 1 is rolling friction force, greatly reducing the friction force between the folding structure 23 and the housing 1, reducing the wear between the folding structure 23 and the housing 1, and reducing the noise generated when the air outlet component 2 rotates.

[0087] According to some embodiments of the present invention, the housing 1 includes a third flanging 73. In some embodiments, it can be understood that: the third flanging 73 is formed on the panel 11, and in other embodiments, it can also be understood that: the third flanging 73 is formed on the top plate 13 or the side plate 12. Referring to Figure 4a and Figure 5a, the third flanging 73 is formed by inwards folding from the installation opening 111 of the housing 1. In this embodiment, it can be understood that: the third flanging 73 is formed by folding from the installation opening 111 of the panel 11 towards the top plate 13; in other embodiments, it can also be understood that: the third flanging 73 is formed by folding from the position corresponding to the installation opening 111 of the top plate 13 towards the panel 11. An auxiliary air outlet passage 74 is defined between the third flanging 73 and the side wall 22. At least one of the folding structure 23, the side wall 22, and the third flanging 73 is provided with an auxiliary air outlet 75 communicating with the auxiliary air outlet passage 74. That is to say, the auxiliary air outlet 75 can be provided only on the folding structure 23, or only on the side wall 22, or only on the third flanging 73, or the auxiliary air outlet 75 can also be provided on any two or three of the folding structure 23, the side wall 22, and the third flanging 73. Thus, by providing the auxiliary air outlet 75, the air supply volume of the air outlet device 100 can be increased, and the air supply range of the air outlet device 100 can be expanded, which is beneficial to improving the uniformity of the indoor temperature.

[0088] For example, in some specific embodiments of the present invention, such as Figure 6 and Figure 7 shown, the auxiliary air outlet 75 is formed on the first flanging 231. The auxiliary air outlet 75 can be formed in a ring shape, and the auxiliary air outlet 75 can be formed in a grille shape. In other words, the auxiliary air outlet 75 includes a plurality of sub-air outlets spaced apart on at least one of the first flanging 231, the side wall 22, and the third flanging 73. Thus, by providing the auxiliary air outlet 75 on the first flanging 231, the distance between the auxiliary air outlet 75 and the auxiliary air outlet passage 74 can be reduced, which is beneficial to reducing the air flow resistance and reducing the air outlet noise.

[0089] In other embodiments, the folding structure 23 and the third flanging 73 are spaced apart to form an auxiliary air outlet 75 communicating with the auxiliary air outlet passage 74. At this time, the folding structure 23 and / or the side wall 22 may not be provided with an auxiliary air outlet 75 communicating with the auxiliary air outlet passage 74, or the folding structure 23 and / or the side wall 22 may also be provided with an auxiliary air outlet 75 communicating with the auxiliary air outlet passage 74. Specifically, the folding structure 23 and the third flanging 73 are spaced apart to form an auxiliary air outlet 75 communicating with the auxiliary air outlet passage 74. In one embodiment, it can be that the second flanging 232 and the third flanging 73 are spaced apart to form an auxiliary air outlet 75 communicating with the auxiliary air outlet passage 74; in another embodiment, it can be that the first flanging 231 and the third flanging 73 are spaced apart to form an auxiliary air outlet 75 communicating with the auxiliary air outlet passage 74.

[0090] According to some embodiments of the present invention, please refer to Figure 4a, the first flanging 231 can be arranged on the third flanging 73, and the second flanging 232 can surround the outer periphery of the third flanging 73. At this time, the cooperation between the third flanging 73 and the first flanging 231 can be used to support the air outlet component 2. At the same time, the cooperation between the second flanging 232 and the third flanging 73 can be used to limit the air outlet component 2 in the circumferential direction, avoid the shaking of the air outlet component 2 when rotating, and avoid the disengagement of the air outlet component 2 from the housing 1, making the operation of the air outlet component 2 more stable. If the folding structure 23 further includes a plurality of rolling members 233, the rolling members 233 can be arranged (for example, supported) on the third flanging 73.

[0091] According to other embodiments of the present invention, the housing 1 includes a support rib 71, and the support rib 71 is arranged around the installation opening. The support rib 71 can be arranged in the auxiliary air outlet channel 74 or upstream of the auxiliary air outlet channel 7. Specifically, in some embodiments of the present invention, the support rib 71 can be formed as an annular structure surrounding the installation opening 111, and the support rib 71 is arranged on the panel 11. Among them, the support rib 71 and the panel 11 can be an integral structure, or the support rib 71 can be connected to the panel 11 through a connector (for example, welding, bolt connection, snap connection), or the support rib 71 can also be supported on the panel 11; the support rib 71 being in an annular structure surrounding the installation opening 111 can be understood as: the support rib 71 surrounds the central axis of the installation opening 111, and the orthographic projection of the support rib 71 at the installation opening 111 (for example, in the plane where the installation opening 111 is located) can be inside or outside the installation opening 111; in other embodiments, the support rib 71 can also be formed on the top plate 13 or the side plate 12. The folding structure 23 is arranged on the support rib 71 and can rotate relative to the support rib 71. Thus, the support rib 71 can support the air outlet component 2, making the position of the air outlet component 2 more stable.

[0092] In some embodiments of the present invention, the support rib 71 is connected to the third flanging 73 through a connecting rib 72, and the folding structure 23 is arranged on the support rib 71. As Figure 20 shown, the connecting rib 72 extends substantially in the horizontal direction. One end of the connecting rib 72 is connected to the third flanging 73, and the other end of the connecting rib 72 is connected to the support rib 71. The support rib 71 can extend substantially in the vertical direction. At this time, the cooperation between the support rib 71 and the first flanging 231 can be used to support the air outlet component 2, thereby avoiding the disengagement of the air outlet component 2 from the housing 1 and making the operation of the air outlet component 2 more stable.

[0093] Furthermore, a communication hole 721 communicating with the auxiliary air outlet passage 74 is further provided on the connecting rib 72. The communication hole 721 may be a through hole formed in the connecting rib 72. Since the connecting rib 72 will block a part of the auxiliary air outlet passage 74, by providing the communication hole 721 on the connecting rib 72, the blocking area of the connecting rib 72 can be reduced, ensuring the air volume of the auxiliary air outlet passage 74.

[0094] According to some embodiments of the present invention, in the direction from the first flanging 231 to the bottom plate 21 (i.e., in the air outlet direction of the auxiliary air outlet passage 74), the third flanging 73 and / or the side wall 22 extend in a direction away from the central axis of the air outlet member 2.

[0095] That is to say, in the direction from the first flanging 231 to the bottom plate 21, the third flanging 73 extends in a direction away from the central axis of the air outlet member 2. Among them, the third flanging 73 may be formed into an arc shape, a straight line shape or a shape combined by an arc and a straight line. Or in the direction from the first flanging 231 to the bottom plate 21, the side wall 22 extends in a direction away from the central axis of the air outlet member 2, and the side wall 22 may be formed into an arc shape, a straight line shape or a shape combined by an arc and a straight line. Or in the direction from the first flanging 231 to the bottom plate 21, both the third flanging 73 and the side wall 22 extend in a direction away from the central axis of the air outlet member 2.

[0096] As Figure 4 and Figure 4a shown, the auxiliary air outlet passage 74 may be generally formed into a flared shape, and the auxiliary air outlet passage 74 can generally guide air to flow out in a direction away from the main air outlet 211. Thus, the air supply range of the auxiliary air outlet passage 74 can be increased, and further, the air supply range of the air outlet device 100 is increased.

[0097] According to some embodiments of the present invention, the air outlet member 2 includes a bottom plate 21, and a main air outlet 211 is formed on the bottom plate 21. A connecting bracket 4 is provided on the bottom plate 21, and the connecting bracket 4 straddles the main air outlet 211.

[0098] As Figure 6 shown, the connecting bracket 4 includes a first support portion 41, a main body portion 42 and a second support portion 43. The first support portion 41 and the second support portion 43 are respectively arranged on both sides of the main air outlet 211. One end of the main body portion 42 is connected to the first support portion 41, the other end of the main body portion 42 is connected to the second support portion 43, and the main body portion 42 is spaced apart from the bottom plate 21. Optionally, the first support portion 41 and the second support portion 43 are respectively arranged on both sides in the width direction of the main air outlet 211. Thus, the interference of the connecting bracket 4 to the main air outlet 211 can be reduced, and the air volume of the air outlet device 100 can be ensured.

[0099] In some embodiments of the present invention, a connecting pipe 44 is provided on the connecting bracket 4, and the connecting pipe 44 and the bottom plate 21 are located on opposite sides of the connecting bracket 4. That is to say, the connecting pipe 44 is provided on the side of the connecting bracket 4 away from the bottom plate 21. The connecting pipe 44 can be formed into a hollow tubular structure. Thus, the hollow structure of the connecting pipe 44 can be used for wiring, making the wire harness of the air outlet device 100 neater, avoiding wire winding, and improving the safety performance of the air conditioning device 1000.

[0100] In some embodiments of the present invention, the axis of the connecting pipe 44 coincides with the rotation axis of the bottom plate 21. Referring to Figure 2 , the connecting pipe 44 can be formed on the main body portion 42 of the connecting bracket 4, and the connecting pipe 44 is provided on the side of the connecting bracket 4 away from the bottom plate 21. The housing 1 includes a support beam 132, and a positioning hole 1321 is provided on the support beam 132. The connecting pipe 44 is rotatably provided in the positioning hole 1321. As Figure 4 and Figure 5 shown, an inlet 131 is formed on the housing 1, and both ends of the support beam 132 in the length direction are respectively provided on the inner wall of the inlet 131. The connecting pipe 44 can extend into the positioning hole 1321 to cooperate with the positioning hole 1321.

[0101] Thus, by the cooperation of the connecting pipe 44 and the positioning hole 1321, the limiting of the air outlet component 2 can be realized, avoiding the shaking of the air outlet component 2 during the rotation process, making the rotation of the air outlet component 2 more stable, and improving the stability and reliability of the air outlet device 100.

[0102] According to some embodiments of the present invention, the air outlet device 100 further includes a wind guiding assembly. Specifically, the wind guiding assembly includes a wind guiding plate 8 and a second driving mechanism 9. The wind guiding plate 8 is pivotally provided at the main air outlet 211, and the second driving mechanism 9 is connected to the wind guiding plate 8 to drive the wind guiding plate 8 to flip.

[0103] In some embodiments of the present invention, the wind guiding plate 8 can be pivotally provided at the main air outlet 211 through a pivoting mechanism. Specifically, the pivoting mechanism can include a pivot shaft 81 and a pivot hole 24. Referring to Figure 4 , pivot shafts 81 are respectively provided at both ends of the wind guiding plate 8 in the length direction, and pivot holes 24 that cooperate with the pivot shafts 81 are provided on the side wall 22 of the air outlet component 2. Thus, the pivotal movement of the wind guiding plate 8 can be conveniently realized, and the structure is simple and the processing is convenient.

[0104] Optionally, the wind guiding plate 8 is a multi-layer wind guiding plate 8. As Figure 2As shown, the air deflector 8 includes a first air deflector sub-plate 82 and a plurality of second air deflector sub-plates 83 stacked on the first air deflector sub-plate 82. Among them, the first air deflector sub-plate 82 is formed into a plate structure, and the second air deflector sub-plate 83 is formed into an arched structure. Thus, by setting the air deflector 8 as a multi-layer air deflector 8, the air supply range of the air deflector 8 can be increased.

[0105] When the air conditioning device 1000 is operating, the air outlet direction can be adjusted by adjusting the pivoting angle of the air deflector 8. When the air conditioning device 1000 is not operating, the main air outlet 211 can be closed by the air deflector 8. Thus, by providing the air deflector assembly, on the one hand, the function of air supply can be achieved, and on the other hand, when the air conditioning device 1000 stops operating, the airflow can be prevented from entering the air duct of the air conditioning device 1000 through the main air outlet 211, thereby improving the cleanliness of the air duct of the air conditioning device 1000 and being beneficial to extending the service life of the air conditioning device 1000.

[0106] In some embodiments of the present invention, when the air conditioning device 1000 is operating, the air outlet component 2 can be driven by the first driving mechanism 3 to rotate integrally to a certain angle, and then the air deflector 8 can be driven by the second driving mechanism 9 to pivot to a certain angle to meet the air supply requirement in a certain direction.

[0107] It can be understood that when the air conditioning device 1000 is operating, the air outlet component 2 can also be kept in a rotating state all the time, so that the air outlet direction can be continuously changed, and the airflow blown out from the air outlet device 100 can blow to all corners of the room, thereby enabling the temperature in the room to be more quickly homogenized.

[0108] According to some embodiments of the present invention, the second driving mechanism 9 includes: a linkage mechanism 92 and a second driving member 91. Optionally, the second driving member 91 is a motor. The second driving member 91 and the air deflector 8 are respectively connected to the linkage mechanism 92. The second driving member 91 has a second driving shaft, and the second driving member 91 is connected to the linkage mechanism 92 through the second driving shaft. Thus, by providing the linkage mechanism 92, the installation position of the second driving member 91 can be adjusted, making the installation position of the second driving member 91 more flexible.

[0109] In some other embodiments of the present invention, the linkage mechanism 92 may further include: a first connecting member 921, a second connecting member 922, and a third connecting member 923. Among them, the first connecting member 921 is fixedly connected to the second driving member 91, the third connecting member 923 is fixedly connected to the air deflector 8, and both ends of the second connecting member 922 are rotatably connected to the first connecting member 921 and the third connecting member 923 respectively. Thus, by designing the structures of the first connecting member 921, the second connecting member 922, and the third connecting member 923, the installation position of the second driving member 91 can be adjusted, making the installation position of the second driving member 91 more flexible and reducing the installation difficulty of the second driving member 91.

[0110] As Figures 6 - 8 shown, in some embodiments of the present invention, the first connecting member 921, the second connecting member 922, and the third connecting member 923 may be formed into strip-shaped rod-like structures. Referring to Figure 6 and combining with Figure 8 , one end in the length direction of the first connecting member 921 is fixedly connected to the second driving member 91, that is to say, there is no relative movement between the first connecting member 921 and the second driving member 91. The other end in the length direction of the first connecting member 921 is rotatably connected to one end in the length direction of the second connecting member 922, the other end in the length direction of the second connecting member 922 is rotatably connected to one end in the length direction of the third connecting member 923, and the other end in the length direction of the third connecting member 923 is fixedly connected to the air deflector 8. That is to say, there is no relative movement between the third connecting member 923 and the air deflector 8. One end in the length direction of the third connecting member 923 may be fixedly connected to the pivot shaft 81 of the air deflector 8.

[0111] In this way, when the second driving member 91 works, it can drive the first connecting member 921 to rotate. The movement of the first connecting member 921 can drive the second connecting member 922 to rotate. The movement of the second connecting member 922 can drive the third connecting member 923 to rotate. The rotation of the third connecting member 923 can drive the air deflector 8 to rotate. Thus, by setting the linkage mechanism 92, the air deflector 8 can be conveniently driven to move, and the assembly of the second driving member 91 is facilitated. During actual assembly, the installation position of the second driving member 91 can be adjusted by adjusting the lengths and assembly angles of the first connecting member 921 and the third connecting member 923, and the length of the second connecting member 922, making the assembly position of the second driving member 91 more flexible.

[0112] In some embodiments of the present invention, the second connecting member 922 may also include a plurality of sub-linkages, and the plurality of sub-linkages may be connected in sequence, and two adjacent sub-linkages are rotatably connected. Thus, the installation position of the second driving member 91 can be made more flexible.

[0113] As Figure 18As shown, in some other embodiments of the present invention, a first rotating shaft 9211 is provided on the first connecting member 921, a second rotating shaft 9231 is provided on the third connecting member 923, and a first rotating hole 9221 that rotatably cooperates with the first rotating shaft 9211 and a second rotating hole 9222 that rotatably cooperates with the second rotating shaft 9231 are provided on the second connecting member 922. Thus, the installation position of the second driving member 91 can also be made more flexible, reducing the installation difficulty of the second driving member 91.

[0114] In some embodiments of the present invention, such as Figure 19 and Figure 21 As shown, the linkage mechanism 92 includes a driving gear 924 and a transmission gear 925 that mesh with each other. The driving gear 924 is connected to the second driving member 91, and the transmission gear 925 is connected to the air deflector 8. Optionally, the transmission gear 925 can be integrally formed with the air deflector 8. Thus, by adjusting the setting position of the transmission gear 925 and the sizes of the transmission gear 925 and the driving gear 924, the installation position of the second driving member 91 can be changed, reducing the installation difficulty of the second driving member 91 and making the installation position of the second driving member 91 more flexible.

[0115] According to some embodiments of the present invention, the housing 1 forms an inlet 131. The housing 1 further includes an air duct 14 surrounding the installation opening 111 and the inlet 131, and the first driving member 31 is located outside the air duct 14. Referring to Figure 6 , the air duct 14 is formed into a cylindrical structure, and the air duct 14 can be connected between the installation opening 111 and the inlet 131. Among them, the air flow entering the housing 1 through the inlet 131 can enter the air duct 14 and flow to the installation opening 111 through the air duct 14. Thus, by providing the air duct 14 in the housing 1 and arranging the first driving member 21 outside the air duct 14, the first driving member 31 can be prevented from being affected by the temperature of the air flow in the air duct 14, which is beneficial to improving the service life of the first driving member 31.

[0116] According to some embodiments of the present invention, the air duct 14 is provided with an avoidance through hole 141. The air outlet member 2 is received in the air duct 14, and part of the first gear 32 extends into the air duct 14 to mesh with the first tooth portion 2311. As Figure 2 and Figure 6 shown, the avoidance through hole 141 can be formed as an arc-shaped hole extending along the circumferential direction of the air duct 14. Thus, while preventing the first driving member 31 from being affected by the temperature of the air flow in the air duct 14, the first gear 32 and the first tooth portion 2311 can be meshed, with a simple structure and convenient processing.

[0117] The air conditioning device 1000 according to the second aspect embodiment of the present invention includes the air outlet device 100 of the air conditioning device 1000 according to the above first aspect embodiment of the present invention.

[0118] According to the air conditioning device 1000 of the embodiment of the second aspect of the present invention, by providing the air outlet device 100 of the air conditioning device 1000 of the above-mentioned first aspect, by providing a first tooth portion 2311 on the air outlet member 2, and by driving the first gear 32 meshing with the first tooth portion 2311 to rotate by the first driving member 31, the rotation of the air outlet member 2 can be conveniently realized. Furthermore, the air outlet direction of the air outlet device 100 can be conveniently adjusted, so that the air outlet device 100 can meet the requirement of multi-directional and dead-angle-free air supply, and the comfort of the air conditioning device 1000 is improved.

[0119] In some embodiments of the present invention, the air conditioning device 1000 can be an air conditioner. The air conditioner can be installed in the bathroom, toilet, bathroom, kitchen, etc. That is to say, the air conditioning device 1000 can be a bathroom air conditioner, a ceiling lamp, a bathroom air conditioner, a kitchen air conditioner, etc.

[0120] As Figures 9 - 16 shown, the air conditioning device 1000 can be installed on the indoor ceiling surface 600. At this time, the air conditioning device 1000 can be located in the space defined by the ceiling, so that the bathroom air conditioning device 1000 does not occupy the space in the room, that is, the air conditioning device 1000 does not occupy the user's activity space, and at the same time, it is convenient to ensure the beauty and neatness of the room.

[0121] Specifically, referring to Figure 9 and Figure 10 , an indoor air inlet 602 and an indoor air outlet 601 are formed on the ceiling surface 600. The air outlet device 100 can be arranged at the indoor air outlet 601. In some embodiments of the present invention, the specific sizes of the indoor air inlet 602 and the indoor air outlet 601 can be adjusted and designed according to the size of the ceiling. For example, the indoor air inlet 602 and the indoor air outlet 601 can be designed according to the relatively common ceiling size of 300mm * 300mm, so that the original decoration does not need to be damaged and the installation is convenient. It can be understood that the specific positions of the indoor air inlet 602 and the indoor air blowing outlet can also be adjusted and designed according to the actual situation. Specifically, the indoor air inlet 602 and the indoor air blowing outlet can be arranged adjacent to each other or spaced apart.

[0122] The air conditioning device 1000 further includes a host module 200. The host module 200 can be installed between the ceiling and the ceiling through a suspension rod, hidden installation, does not occupy space, and has a neat appearance. The host module 200 includes a housing 20, a first fan 30, a first heat exchanger 40, a second fan 50, a second heat exchanger 60, and a compressor 70. The housing 20 can provide an installation space for the first heat exchanger 40, the first fan 30, the second heat exchanger 60, the second fan 50, and the compressor 70.

[0123] Inside the housing 20, a first air duct 206 and a second air duct 207 are formed and separated from each other. The first air duct 206 has a first air inlet 2061 and a first air outlet 2062. The second air duct 207 has a second air inlet 2071 and a second air outlet 2072. The first fan 30 and the first heat exchanger 40 are arranged inside the first air duct 206. The first fan 30 can drive the air flow to flow from the first air inlet 2061 to the first air outlet 2062. The second fan 50 and the second heat exchanger 60 are arranged inside the second air duct 207. The second fan 50 can drive the air flow to flow from the second air inlet 2071 to the second air outlet 2072. The first air inlet 2061 is communicated with the indoor air inlet 602. The second air outlet 2072 is communicated with the outside. The air outlet device 100 is communicated with the first air outlet 2062. As Figure 9 and Figure 10 shown, an outdoor air exhaust port 701 communicated with the outside is formed on the wall 700. The second air outlet 2072 is communicated with the outdoor air exhaust port 701.

[0124] The compressor 70 can be arranged inside the housing 20. A heat exchange flow path is formed among the compressor 70, the first heat exchanger 40 and the second heat exchanger 60. The refrigerant can flow inside the heat exchange flow path so that the air conditioning device 1000 can refrigerate or heat. Among them, when both the first heat exchanger 40 and the second heat exchanger 60 are working, one of the first heat exchanger 40 and the second heat exchanger 60 is an evaporator and the other is a condenser. It can be understood that in some other embodiments of the present invention, the compressor 70 can also be arranged outside the housing 20.

[0125] Specifically, when the first heat exchanger 40 is a condenser, the second heat exchanger 60 is an evaporator; when the first heat exchanger 40 is an evaporator, the second heat exchanger 60 is a condenser. The refrigerant can liquefy and release heat in the condenser and vaporize and absorb heat in the evaporator. Thus, the refrigeration cycle of the air conditioning device 1000 can proceed smoothly. For example, the first heat exchanger 40 and the second heat exchanger 60 can be connected through a four-way reversing valve. By switching the four-way reversing valve, the first heat exchanger 40 and the second heat exchanger 60 can be switched between an evaporator and a condenser.

[0126] For example, when the air conditioning device 1000 refrigerates, the first heat exchanger 40 is a condenser and the second heat exchanger 60 is an evaporator; when the air conditioning device 1000 heats, the first heat exchanger 40 is an evaporator and the second heat exchanger 60 is a condenser.

[0127] It can be understood that when the air conditioning device 1000 is in the refrigeration mode, driven by the first fan 30, the indoor hot air flow flows from the indoor air inlet 602 into the ceiling space, and then enters the first air duct 206 through the first air inlet 2061. When the hot air flow passes through the first heat exchanger 40, it exchanges heat with the first heat exchanger 40 and becomes cold air flow, which then flows towards the first air outlet 2062. Thus, the cold air flow can flow from the first air outlet 2062 into the room to cool the room. To enable the continuous operation of the refrigeration cycle of the air conditioning device 1000, driven by the second fan 50, the indoor air flow also enters the second air duct 207 through the second air inlet 2071. When the air flow passes through the second heat exchanger 60, it exchanges heat with the second heat exchanger 60 and becomes hot air flow, which then flows towards the second air outlet 2072. Thus, the air flow after heat exchange by the second heat exchanger 60 can be discharged to the outside through the second air outlet 2072.

[0128] When the air conditioning device 1000 is in the heating mode, driven by the first fan 30, the indoor cold air flow flows from the indoor air inlet 602 into the ceiling space, and then enters the first air duct 206 through the first air inlet 2061. When the cold air flow passes through the first heat exchanger 40, it exchanges heat with the first heat exchanger 40 and becomes hot air flow, which then flows towards the first air outlet 2062. Thus, the hot air flow can flow from the first air outlet 2062 into the room to heat the room. To enable the continuous operation of the heating cycle of the air conditioning device 1000, driven by the second fan 50, the indoor air flow also enters the second air duct 207 through the second air inlet 2071. When the air flow passes through the second heat exchanger 60, it exchanges heat with the second heat exchanger 60 and becomes cold air flow, which then flows towards the second air outlet 2072. Thus, the air flow after heat exchange by the second heat exchanger 60 can be discharged to the outside through the second air outlet 2072.

[0129] It can be understood that when the air conditioning device 1000 is operating, when only the second fan 50 is turned on and at this time the compressor 70 and the first fan 30 are not working, the indoor air can enter the ceiling space and enter the second air duct 207 through the second air inlet 2071, and then be discharged to the outside through the second air outlet 2072. At this time, the exhaust function can be achieved.

[0130] Thus, by defining a first air duct 206 and a second air duct 207 that are separated from each other within the cabinet 20, and arranging a first heat exchanger 40 and a first blower 30 within the first air duct 206, and arranging a second heat exchanger 60 and a second blower 50 within the second air duct 207, the indoor unit and the outdoor unit of the split air conditioning device 1000 in the related art are integrated into one. During installation, the air conditioning device 1000 can be integrally installed indoors, making the structure of the air conditioning device 1000 simple and the installation convenient. Moreover, the air duct structure of the air conditioning device 1000 is simple, which is beneficial to reducing the overall volume of the air conditioning device 1000, realizing the miniaturization of the air conditioning module, facilitating the embedding of the air conditioning module into the top of a room (such as a bathroom) for concealed installation. At the same time, since the air outlet device 100 and the host module 200 are separately arranged, the positions of the air outlet device 100 and the host module 200 can be flexibly designed, making the installation position of the air conditioning device more flexible.

[0131] In some embodiments of the present invention, the air outlet device 100 is connected to the first air outlet 2062 through a first flexible duct 300. Optionally, the first flexible duct 300 is a flexible corrugated pipe. The length of the first flexible duct 300 can be stretched and bent to adapt to the installation requirements at different positions. The diameter of the first flexible duct 300 can be 80 mm to 150 mm. For example, the diameter of the first flexible duct 300 can be 100 mm. Thereby, the connection difficulty between the air outlet device 100 and the first air outlet 2062 can be reduced, and the installation positions of the host module 200 and the air outlet device 100 can be made more flexible.

[0132] Furthermore, the second air outlet 2072 and the outdoor exhaust port 701 are connected through a second flexible duct 400. Optionally, the second flexible duct 400 is a flexible corrugated pipe. The length of the second flexible duct 400 can be stretched and bent to adapt to the installation requirements at different positions. The diameter of the second flexible duct 400 can be 80 mm to 150 mm. For example, the diameter of the second flexible duct 400 can be 100 mm. Thereby, the connection difficulty between the host module 200 and the outdoor exhaust port 701 can be reduced, and the range of selectable positions for the host module 200 and the outdoor exhaust port 701 is large and the restrictions are small, making the installation positions of the host module 200 and the outdoor exhaust port 701 more flexible.

[0133] In some embodiments of the present invention, the first air inlet 2061 and the first air outlet 2062 are oppositely arranged, and / or the second air inlet 2071 and the second air outlet 2072 are oppositely arranged. Specifically, only the first air inlet 2061 and the first air outlet 2062 can be oppositely arranged, or only the second air inlet 2071 and the second air outlet 2072 can be oppositely arranged, or the first air inlet 2061 and the first air outlet 2062 can be oppositely arranged while the second air inlet 2071 and the second air outlet 2072 are oppositely arranged at the same time.

[0134] Wherein, when the first air inlet 2061 and the first air outlet 2062 are oppositely arranged, the air flow entering the first air duct 206 through the first air inlet 2061 can flow towards the first air outlet 2062 without changing the air flow direction, effectively reducing the air resistance and air volume loss. When the second air inlet 2071 and the second air outlet 2072 are oppositely arranged, the air flow entering the second air duct 207 through the second air inlet 2071 can flow towards the second air outlet 2072 without changing the air flow direction, effectively reducing the air resistance and air volume loss.

[0135] For example, in some embodiments of the present invention, referring to Figure 9 and Figure 10 , the housing 20 can be formed in a cuboid shape. The housing 20 includes a first side wall 201 and a second side wall 202 which are oppositely arranged. The first air inlet 2061 and the second air outlet 2072 are both formed on the first side wall 201, and the first air outlet 2062 and the second air inlet 2071 are both formed on the second side wall 202, and the first air inlet 2061 is opposite to the first air outlet 2062, and the second air inlet 2071 is opposite to the second air outlet 2072. Thus, the air resistance and air volume loss can be reduced, and the air duct structure of the air conditioning device 1000 can be made simple, which is beneficial to reducing the volume of the main machine module 200 and the occupied space of the main machine module 200.

[0136] For example, in some embodiments of the present invention, referring to Figures 9 - 10 and Figures 14 - 17 , the housing 20 can be formed in a cuboid shape. The housing 20 includes a first side wall 201 and a second side wall 202 which are oppositely arranged. The first air inlet 2061 and the second air outlet 2072 are both formed on the first side wall 201, and the first air outlet 2062 and the second air inlet 2071 are both formed on the second side wall 202, and the first air inlet 2061 and the second air outlet 2072 are spaced apart in the length direction of the first side wall 201, and the first air outlet 2062 and the second air inlet 2071 are spaced apart in the length direction of the second side wall 202.

[0137] Thus, by arranging the first air inlet 2061 and the second air outlet 2072 at intervals in the length direction of the first side wall 201, and arranging the first air outlet 2062 and the second air inlet 2071 at intervals in the length direction of the second side wall 202, the casing 20 can be set to be elongated, which is beneficial to reducing the width of the main machine module 200. For example, the width of the main machine module 200 can be set to be less than 300 mm. In this way, when the ceiling surface 600 is a standard aluminum gusset plate, the aluminum gusset plate on the ceiling surface 600 can be removed, so that the main machine module 200 can be installed on the ceiling through the gap between the keels. When the ceiling surface 600 is a non-standard aluminum gusset plate, it can be installed after cutting the gypsum board. That is to say, even if the ceiling decoration has been completed, the air conditioning device 1000 can still be installed.

[0138] In some embodiments, as Figure 17 shown, the interior of the casing 20 is partitioned into three independent first chambers 203, second chambers 204, and third chambers 205, and the first chambers 203, second chambers 204, and third chambers 205 can be arranged in the length direction of the casing 20. In some embodiments of the present invention, a first partition and a second partition are provided at intervals in the length direction of the casing 20, and the first partition and the second partition divide the interior of the casing 20 into independent first chambers 203, second chambers 204, and third chambers 205.

[0139] Among them, the first chamber 203 and the third chamber 205 are respectively located on both sides of the second chamber 204. Specifically, the first fan 30 and the second heat exchanger 60 can be arranged in the first chamber 203, the second fan 50 and the second heat exchanger 60 can be arranged in the third chamber 205, and the compressor 70 can be arranged in the second chamber 204. In this way, both the first chamber 203 and the third chamber 205 can function as air ducts.

[0140] Thus, the casing 20 is directly partitioned into three chambers. In this way, the casing 20 not only has the function of accommodating and installing fans and heat exchangers, but also the first chamber 203 and the third chamber 205 can function as air ducts, so that the air ducts are integrally formed by the casing 20 without the need to additionally provide air duct components, making the main machine module 200 of the air conditioning device 1000 more streamlined and compact, and saving production costs and installation procedures.

[0141] According to some embodiments of the present invention, a water receiving tray 80 is provided at the bottom of the casing 20, the first heat exchanger 40 and the second heat exchanger 60 are both arranged on the water receiving tray 80, and a water pumping module 90 for spraying the water in the water receiving tray 80 onto the second heat exchanger 60 is provided on the water receiving tray 80. Optionally, the water pumping module 90 is a water wheel or a water pump. The water receiving tray 80 can be used to receive the condensed water on the first heat exchanger 40 and the second heat exchanger 60.

[0142] During use, the water pump module 90 can be turned on in the refrigeration cycle mode to spray condensed water onto the high-temperature second heat exchanger 60. At this time, the heat on the second heat exchanger 60 can be used to evaporate the condensed water, and the evaporated water vapor can be discharged outdoors through the second blower 50 to achieve the purpose of dehumidification.

[0143] Furthermore, the air conditioning device 1000 further includes an electric heating device 500. The electric heating device 500 can be arranged in the first air duct 206 or on the air outlet device 100. During the dehumidification process, the electric heating device 500 can be turned on to heat the air flow blown into the room through the electric heating device 500 to achieve constant-temperature dehumidification. Moreover, since the heating by the refrigerant alone requires the indoor temperature to rise to the preset value after starting up for a period of time, by adding the electric heating device 500, it can play the role of preheating at startup, auxiliary heating, and rapid temperature rise during heating.

[0144] In some embodiments, the air conditioning device 1000 further includes a sterilization module. The sterilization module can be an ion sterilization module, an ultraviolet lamp sterilization module, etc. The sterilization module can be arranged in the first air duct 206 or in the air outlet device 100. Thus, the indoor air with bacteria can be sterilized by the sterilization module and then sent back indoors, realizing the purification of the air.

[0145] In some embodiments of the present invention, as Figures 9 - 16 shown, the air outlet device 100 and the outdoor air outlet 701 are respectively located on both sides of the main machine module 200. Thus, when the indoor air supply opening 601 is located in the middle of the room, the main machine module 200 is located between the outdoor air outlet 701 and the indoor air supply opening 601, which is beneficial to shortening the pipeline length, saving costs, and reducing air volume loss.

[0146] According to some embodiments of the present invention, the air conditioning device 1000 is provided with a lighting lamp. The lighting lamp can be arranged on the air outlet device 100 or the main machine module 200. Thus, the lighting of the room (such as a bathroom) can be realized.

[0147] In some embodiments of the present invention, a filter screen is provided at the indoor air inlet 602. The filter screen can be used to filter the air entering the ceiling, so as to filter the air entering the first air duct 206 and the second air duct 207, realizing the purification of the air.

[0148] The other configurations and operations of the air conditioning device 1000 according to the embodiments of the present invention are known to those of ordinary skill in the art and will not be described in detail here.

[0149] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by terms such as "length", "width", "vertical", "horizontal", "top", "bottom", "inner", "outer", "axial", "radial", "circumferential", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.

[0150] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, the meaning of "a plurality" is two or more unless otherwise specifically defined.

[0151] In the present invention, unless otherwise clearly defined and limited, terms such as "mounted", "connected", "coupled", "fixed", etc. shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be directly connected or indirectly connected through an intermediate medium, and it may be the internal communication of two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0152] In the present invention, unless otherwise clearly defined and limited, the first feature being "on" or "under" the second feature may be that the first and second features are in direct contact, or the first and second features are indirectly in contact through an intermediate medium. Moreover, the first feature being "above", "over" and "on top of" the second feature may be that the first feature is directly above or obliquely above the second feature, or merely indicates that the first feature has a higher horizontal height than the second feature. The first feature being "under", "beneath" and "underneath" the second feature may be that the first feature is directly below or obliquely below the second feature, or merely indicates that the first feature has a lower horizontal height than the second feature.

[0153] In the description of this specification, the description referring to terms such as "one embodiment", "some embodiments", "examples", "specific examples", or "some examples" means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any one or more embodiments or examples in a suitable manner. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.

[0154] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the claims and their equivalents.

Claims

1. An air outlet device, characterized in that, Comprising: A housing, on which an installation opening is formed; An air outlet component, which is rotatably arranged at the installation opening, a main air outlet is formed on the air outlet component, and a first tooth part is formed on the air outlet component; And, A first driving mechanism, which includes a first driving part and a first gear, a second tooth part meshing with the first tooth part is formed on the first gear, and the first driving part is connected to the first gear to drive the first gear to rotate; The air outlet component includes: A bottom plate, on which the main air outlet is formed; and, A side wall, which surrounds the outer periphery of the bottom plate, and a folding structure that turns outward is provided on the side wall, and the folding structure is arranged on the housing; The folding structure includes: A first flanging, one end of the first flanging is connected to the side wall, and the other end extends in a direction away from the central axis of the air outlet component, and the first tooth part is formed on the first flanging; A second flanging, which is connected to the first flanging and is opposite to the side wall, The housing includes a third flanging, which is formed by folding inward from the installation opening of the housing, and an auxiliary air outlet channel is defined between the third flanging and the side wall. In the direction from the first flanging to the bottom plate, the auxiliary air outlet channel extends in a direction away from the central axis of the air outlet component.

2. The air outlet device according to claim 1, characterized in that, The outer diameter of the first gear is smaller than the outer diameter of the first flanging.

3. The air outlet device according to claim 1, characterized in that, The folding structure further includes: a plurality of rolling elements, and the plurality of rolling elements are arranged at intervals in the circumferential direction of the air outlet component, and both ends of each rolling element are rotatably connected to the side wall and the second flanging respectively.

4. The air outlet device according to claim 1, characterized in that At least one of the folding structure, the side wall and the third flanging is provided with an auxiliary air outlet communicating with the auxiliary air outlet channel; or, the folding structure is spaced from the third flanging to form an auxiliary air outlet communicating with the auxiliary air outlet channel.

5. The air outlet device according to claim 1, wherein The first flanging is arranged on the third flanging, and the second flanging surrounds the outer periphery of the third flanging.

6. The air outlet device according to claim 1, characterized in that, The housing includes a support rib, the support rib surrounds the installation opening, and the folding structure is arranged on the support rib and can rotate relative to the support rib.

7. The air outlet device according to claim 6, characterized in that, The support rib is connected to the third flanging through a connecting rib, and a communication hole communicating with the auxiliary air outlet channel is also provided on the connecting rib.

8. The air outlet device according to claim 1, characterized in that, In the direction from the first flanging to the bottom plate, the side wall and / or the third flanging extend in a direction away from the central axis of the air outlet component.

9. The air outlet device according to any one of claims 1-8, characterized in that, The air outlet component includes a bottom plate, the main air outlet is formed on the bottom plate, a connecting bracket is provided on the bottom plate, the connecting bracket straddles the main air outlet, and a connecting pipe is provided on the connecting bracket, and the connecting pipe and the bottom plate are located on opposite sides of the connecting bracket.

10. The air outlet device according to claim 9, characterized in that, The axis of the connecting pipe coincides with the rotation axis of the bottom plate, the housing includes a support beam, and a positioning hole is provided on the support beam, and the connecting pipe is rotatably arranged in the positioning hole.

11. The air outlet device according to claim 1, characterized in that, It further includes a wind guiding component, and the wind guiding component includes: A wind guiding plate, which is pivotally arranged at the main air outlet; A second driving mechanism, the second driving mechanism being connected to the air deflector to drive the air deflector to flip.

12. The air outlet device according to claim 11, characterized in that, The second driving mechanism includes: A linkage mechanism; A second driving member, the second driving member and the air deflector being respectively connected to the linkage mechanism.

13. The air outlet device according to claim 12, characterized in that, The linkage mechanism includes a first connecting member, a second connecting member and a third connecting member connected in sequence. The first connecting member is fixedly connected to the second driving member, the third connecting member is fixedly connected to the air deflector, and two ends of the second connecting member are respectively rotatably connected to the first connecting member and the third connecting member.

14. The air outlet device according to claim 12, wherein, The linkage mechanism includes a driving gear and a transmission gear that mesh with each other. The driving gear is connected to the second driving member, and the transmission gear is connected to the air deflector.

15. The air outlet device according to claim 1, characterized in that, The housing is formed with an inlet. The housing further includes an air duct surrounding the mounting port and the inlet. The first driving member is located outside the air duct.

16. The air outlet device according to claim 15, characterized in that, The air duct is provided with an avoidance through hole. The air outlet component is received in the air duct, and part of the first gear extends into the air duct to mesh with the first tooth portion.

17. An air conditioning device, characterized in that, Including the air outlet device according to any one of claims 1-16.

Citation Information

Patent Citations

  • Air outlet assembly of duct type air conditioner and duct type air conditioner

    CN107218667A

  • Suspended ceiling type air conditioner air duct air outlet volume control mechanism

    CN211476231U

  • Air deflector movement mechanism of air conditioner indoor unit and air conditioner indoor unit

    CN212538047U

  • Air outlet device and air conditioning equipment

    CN214620027U